利用电阻层析成像技术研究环空多相流

M. Qureshi, M. Ali, M. A. Rahman, Ibrahim Hassan, G. Rasul, Rashid Hassan
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引用次数: 4

摘要

井眼清洗是钻井作业的关键环节,它直接影响钻井作业的经济性、作业时间和作业安全性。不充分的井眼清洗会导致堵塞,导致循环损失和钻杆过早磨损。固体岩屑以多相流的形式运移,为井眼清洁问题提供了一个解决方案,因为它有助于降低作业成本,缩短作业时间,提高整体钻井作业的质量。电阻层析成像技术(ERT)是一种很有前途的技术,可以将井眼清洗过程中的三维流动状况可视化。利用ERT系统对钻井环空多相流动特性进行研究和分析,定量提供钻井环空原位体积分数分布。这项工作的动机是研究不同偏心率(0- 50%)、内管转速(0-120 RPM)和液体流速(160-190 Kg/min)对ERT系统环空二次相(固体+空气)输送的影响。在卡塔尔德克萨斯A&M大学(TAMUQ),利用ERT系统在带环空的水平流动回路中进行了三相流动条件(水、空气和固体)实验。流环环空线由6.16 m水平/倾斜线组成。外亚克力管的内径和内不锈钢管的外径分别为114.3毫米(4.5英寸)和63.5毫米(2.5英寸)。以5wt %的浓度注射玻璃珠(2-3 mm)。实验结果表明,ERT传感器能够提供环空多相流流态的实时定量图像,可以有效地用于观察环空不透明区域的二次相(固体+空气)输运。在一定的实验条件下,二次相(固体+空气)浓度随管内偏心距的增大而增大,管内旋转对二次相(固体+空气)浓度的影响不显著。
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Experimental Investigation of Multi-Phase Flow in an Annulus Using Electric Resistance Tomography
The hole cleaning is considered a key element of drilling operation as it impacts the economics of drilling operations, operational time of operations and the safety of operations. Inadequate hole cleaning can lead to blockages resulting in loss of circulation and premature wear out of the drill pipe. The transport of solids cuttings as a multiphase flow offers a solution to the hole cleaning issue, as it can aid to lower operational cost, reduce operation time, and enhance the quality of overall drilling operations. Electrical resistance tomography (ERT) is a promising technology to visualize the 3D flow conditions involved in the hole cleaning process. ERT system is utilized to study and analyze the multiphase flow behavior and to provide in situ volume fraction distribution quantitatively through the drilling annulus. The motive of this work is to investigate the effect of different eccentricities (0-50 %), inner pipe rotation speed (0-120 RPM) and liquid flow rates (160-190 Kg/min) on the secondary phase (solids + air) transport across the annulus using the ERT system. The three-phase flow conditions (water, air, and solids) experiments were conducted in the horizontal flow loop with annulus at Texas A&M University at Qatar (TAMUQ) using ERT system. The flow loop annulus line consists of 6.16 m horizontal/inclined line. The inner diameter of the outer acrylic pipe and the outer diameter of the inner stainless steel pipe were 114.3 mm (4.5 in) and 63.5 mm (2.5 in), respectively. The glass beads (2-3 mm) were injected at a concentration of 5 wt%. The experimental results indicate that the ERT sensors have the capability of providing real-time quantitative images of annular multiphase flow regimes and it can be utilized effectively to observe the secondary phase (solids + air) transport across the opaque region of the annulus. It was also observed that the concentration of secondary phase (solids + air) tends to increase with an increase in the eccentricity of the inner pipe and the inner pipe rotation does not have a significant effect on the concentration of secondary phase (solids + air) at selected experimental conditions.
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